A thermo-hydro-mechanical model to evaluate the seismic properties of geothermal reservoirs

Author:

Li Nianqi1ORCID,Fu Li-Yun2ORCID,Deng Wubing3ORCID,Carcione José M.4,Yang Jian1ORCID

Affiliation:

1. China University of Petroleum (East China), Shandong Provincial Key Laboratory of Deep Oil and Gas, Qingdao, China and China University of Petroleum (East China), School of Geosciences, Qingdao, China.

2. China University of Petroleum (East China), Shandong Provincial Key Laboratory of Deep Oil and Gas, Qingdao, China and Qingdao National Laboratory for Marine Science and Technology, Laboratory for Marine Mineral Resources, Qingdao, China. (corresponding author)

3. China University of Petroleum (East China), Shandong Provincial Key Laboratory of Deep Oil and Gas, Qingdao, China and Qingdao National Laboratory for Marine Science and Technology, Laboratory for Marine Mineral Resources, Qingdao, China.

4. National Institute of Oceanography and Applied Geophysics — OGS, Trieste, Italy.

Abstract

Fractured-vuggy thermal reservoirs with complex pore spaces (stiff pores, cracks, and fractures) are typical geothermal resources for development and utilization in China. The cyclic recovery of such thermal reservoirs involves a complex thermo-hydro-mechanical (THM) coupling process. Insights into the thermoelastic effects of heating-cooling cycles on the seismic response have great potential for seismic monitoring in the cyclic recovery, which remains largely unaddressed in the literature. We intend to fill this gap by applying the double-porosity thermoelasticity theory to interpret ultrasonic measurements on granite under water-cooling conditions. We consider an isotropic porous host embedded with fractures. A plane-wave analysis yields the classical P and S waves and three slow P waves, namely the slow (Biot) P1, the slow (Biot) P2, and a thermal P. We investigate the combined effect of temperature, porous structure, and pore fluid on the thermoelastic properties of the THM process for typical granite reservoirs that experience a cold-shock process. Fractures provide the main channels for heat exchange and fluid flow. Our THM thermoelastic model describes the reservoir properties as a function of temperature associated with thermal-induced cracking, where fracture porosity is more important than the stiff (host) pore to describe the reservoir quality. We find that the thermal conductivity and specific heat have negligible effects in the seismic frequency band for the temperature range of less than 400°C, whereas the crack density significantly affects the seismic response in the heating-cooling cycles because of the additional contribution of thermal- and cold-shock-induced cracks. We further determine that the P-wave velocity and attenuation due to thermal effects under water cooling offer an important index to monitor the thermal-induced cracking and operation efficiency of the enhanced geothermal system. The THM thermoelastic model lays the foundation for active (or passive) seismic monitoring of the cyclic recovery of thermal reservoirs.

Funder

111 project “Deep-Superdeep Oil & Gas Geophysical Exploration”

Fundamental Research Funds for the Central Universities

National Natural Science Foundation of China

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Thermo-poroelastic AVO modeling of Olkaria geothermal reservoirs;Geoenergy Science and Engineering;2024-10

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